Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am weak in mathematics and always get stuck with the problems which require answer modulo some prime no.

eg: (500!/20!) mod 1000000007

I am familiar with BigIntegers but calculating modulo after calculating factorial of 500(even after using DP) seems to take a load of time.

I'd like to know if there's a particular way of approaching/dealing with these kind of problems.

Here is one such problem which I am trying to solve at the moment: http://www.codechef.com/FEB12/problems/WCOUNT

It would really be helpful if someone could direct me to a tutorial or an approach to handle these coding problems. I am familiar with Java and C++.

share|improve this question

3 Answers 3

up vote 32 down vote accepted

The key to these large-number modulus tasks is not to compute the full result before performing the modulus. You should reduce the modulus in the intermediate steps to keep the number small:

500! / 20! = 21 * 22 * 23 * ... * 500

21 * 22 * 23 * 24 * 25 * 26 * 27 = 4475671200

4475671200 mod 1000000007 = 475671172
475671172 * 28 mod 1000000007 = 318792725
318792725 * 29 mod 1000000007 = 244988962
244988962 * 30 mod 1000000007 = 349668811

...

 31768431 * 500 mod 1000000007 = 884215395

500! / 20! mod 1000000007 = 884215395

You don't need to reduce modulus at every single step. Just do it often enough to keep the number from getting too large.

share|improve this answer
1  
thank you for your answer. could you help me with one more doubt. how am I to make sure that eg:31768431*x ( for any x) would not go outside the range of long. –  daerty0153 Feb 7 '12 at 0:12
    
If the max value of long is 2^63 - 1, then 1768431 * x will not overflow as long as x < 290331368171. –  Mysticial Feb 7 '12 at 0:15
    
But wouldn't the comparison operation be equally expensive? –  nikhil Jul 2 '12 at 14:38
    
@nikhil What comparison operations are you referring to? –  Mysticial Jul 2 '12 at 14:40
1  
The comparison operation itself is cheap. Determining how many multiplies you can do before you need a reduction is a bit tricker. (Roughly speaking you would need to keep track of the bit-length of the product as it grows.) But you can always default to reducing modulus after every multiply. –  Mysticial Jul 2 '12 at 14:58

Start by observing that 500!/20! is the product of all numbers from 21 to 500, inclusive and Next, observe that you can perform modulo multiplication item by item, taking %1000000007 at the end of each operation. You should be able to write your program now. Be careful not to overflow the number: 32 bits may not be enough.

share|improve this answer

I think this could be of some use for you

for(mod=prime,res=1,i=20;i<501;i++)
{
res*=i; // an obvious step to be done 
if(res>mod) // check if the number exceeds mod
res%=mod; // so as to avoid the modulo as it is costly operation 
}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.